Mixing in Supersonic Turbulence
Liubin Pan, Evan Scannapieco

TL;DR
This study systematically investigates passive scalar mixing in isothermal supersonic turbulence through numerical simulations, revealing how Mach number influences mixing timescales and scalar cascade behavior.
Contribution
First comprehensive numerical analysis of passive scalar mixing in supersonic turbulence, linking Mach number effects to scalar cascade and structure function scaling.
Findings
Mixing timescale ratio increases with Mach number up to 3, then plateaus.
Scalar mixing driven by cascade process similar to velocity field.
Scalar structure functions become flatter as Mach number increases.
Abstract
In many astrophysical environments, mixing of heavy elements occurs in the presence of a supersonic turbulent velocity field. Here we carry out the first systematic numerical study of such passive scalar mixing in isothermal supersonic turbulence. Our simulations show that the ratio of the scalar mixing timescale, , to the flow dynamical time, (defined as the flow driving scale divided by the rms velocity), increases with the Mach number, , for , and becomes essentially constant for This trend suggests that compressible modes are less efficient in enhancing mixing than solenoidal modes. However, since the majority of kinetic energy is contained in solenoidal modes at all Mach numbers, the overall change in is less than 20\% over the range . At all Mach numbers, if pollutants are…
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